/[PAMELA software]/DarthVader/TrackerLevel2/src/TrkLevel2.cpp
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Annotation of /DarthVader/TrackerLevel2/src/TrkLevel2.cpp

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Revision 1.39 - (hide annotations) (download)
Wed Aug 22 07:03:45 2007 UTC (17 years, 3 months ago) by pam-fi
Branch: MAIN
Changes since 1.38: +41 -0 lines
added several methods to get PFA info

1 mocchiut 1.1 /**
2     * \file TrkLevel2.cpp
3     * \author Elena Vannuccini
4     */
5     #include <TrkLevel2.h>
6     #include <iostream>
7 pam-fi 1.14 #include <math.h>
8 mocchiut 1.1 using namespace std;
9     //......................................
10     // F77 routines
11     //......................................
12     extern "C" {
13     void dotrack_(int*, double*, double*, double*, double*, int*);
14 pam-fi 1.2 void dotrack2_(int*, double*, double*, double*, double*,double*, double*, double*,int*);
15 pam-fi 1.34 void mini2_(int*,int*,int*);
16     void guess_();
17     void gufld_(float*, float*);
18     float risxeta2_(float *);
19     float risxeta3_(float *);
20     float risxeta4_(float *);
21     float risyeta2_(float *);
22 mocchiut 1.1 }
23 pam-fi 1.26
24 mocchiut 1.1 //--------------------------------------
25     //
26     //
27     //--------------------------------------
28     TrkTrack::TrkTrack(){
29 pam-fi 1.21 // cout << "TrkTrack::TrkTrack()" << endl;
30 pam-fi 1.3 seqno = -1;
31     image = -1;
32 mocchiut 1.1 chi2 = 0;
33 pam-fi 1.14 nstep = 0;
34     for(int it1=0;it1<5;it1++){
35     al[it1] = 0;
36     for(int it2=0;it2<5;it2++)coval[it1][it2] = 0;
37 mocchiut 1.1 };
38     for(int ip=0;ip<6;ip++){
39 pam-fi 1.21 xgood[ip] = 0;
40     ygood[ip] = 0;
41     xm[ip] = 0;
42     ym[ip] = 0;
43     zm[ip] = 0;
44     resx[ip] = 0;
45     resy[ip] = 0;
46 pam-fi 1.32 tailx[ip] = 0;
47     taily[ip] = 0;
48 pam-fi 1.21 xv[ip] = 0;
49     yv[ip] = 0;
50     zv[ip] = 0;
51     axv[ip] = 0;
52     ayv[ip] = 0;
53     dedx_x[ip] = 0;
54     dedx_y[ip] = 0;
55     };
56 pam-fi 1.32 // clx = 0;
57     // cly = 0;
58 pam-fi 1.29 // clx = new TRefArray(6,0); //forse causa memory leak???
59     // cly = new TRefArray(6,0); //forse causa memory leak???
60 pam-fi 1.32 // clx = TRefArray(6,0);
61     // cly = TRefArray(6,0);
62    
63 pam-fi 1.33 TrkParams::SetTrackingMode();
64     TrkParams::SetPrecisionFactor();
65     TrkParams::SetStepMin();
66     TrkParams::SetPFA();
67    
68 mocchiut 1.1 };
69     //--------------------------------------
70     //
71     //
72     //--------------------------------------
73     TrkTrack::TrkTrack(const TrkTrack& t){
74 pam-fi 1.3 seqno = t.seqno;
75 mocchiut 1.1 image = t.image;
76     chi2 = t.chi2;
77 pam-fi 1.14 nstep = t.nstep;
78     for(int it1=0;it1<5;it1++){
79     al[it1] = t.al[it1];
80     for(int it2=0;it2<5;it2++)coval[it1][it2] = t.coval[it1][it2];
81 mocchiut 1.1 };
82     for(int ip=0;ip<6;ip++){
83 pam-fi 1.21 xgood[ip] = t.xgood[ip];
84     ygood[ip] = t.ygood[ip];
85     xm[ip] = t.xm[ip];
86     ym[ip] = t.ym[ip];
87     zm[ip] = t.zm[ip];
88     resx[ip] = t.resx[ip];
89     resy[ip] = t.resy[ip];
90 pam-fi 1.32 tailx[ip] = t.tailx[ip];
91     taily[ip] = t.taily[ip];
92 pam-fi 1.21 xv[ip] = t.xv[ip];
93     yv[ip] = t.yv[ip];
94     zv[ip] = t.zv[ip];
95     axv[ip] = t.axv[ip];
96     ayv[ip] = t.ayv[ip];
97     dedx_x[ip] = t.dedx_x[ip];
98     dedx_y[ip] = t.dedx_y[ip];
99     };
100 pam-fi 1.32 // clx = 0;
101     // cly = 0;
102     // if(t.clx)clx = new TRefArray(*(t.clx));
103     // if(t.cly)cly = new TRefArray(*(t.cly));
104     // clx = TRefArray(t.clx);
105     // cly = TRefArray(t.cly);
106    
107 pam-fi 1.33 TrkParams::SetTrackingMode();
108     TrkParams::SetPrecisionFactor();
109     TrkParams::SetStepMin();
110     TrkParams::SetPFA();
111    
112 mocchiut 1.1 };
113     //--------------------------------------
114     //
115     //
116     //--------------------------------------
117 pam-fi 1.21 void TrkTrack::Copy(TrkTrack& t){
118    
119     t.seqno = seqno;
120     t.image = image;
121     t.chi2 = chi2;
122     t.nstep = nstep;
123     for(int it1=0;it1<5;it1++){
124     t.al[it1] = al[it1];
125     for(int it2=0;it2<5;it2++)t.coval[it1][it2] = coval[it1][it2];
126     };
127     for(int ip=0;ip<6;ip++){
128     t.xgood[ip] = xgood[ip];
129     t.ygood[ip] = ygood[ip];
130     t.xm[ip] = xm[ip];
131     t.ym[ip] = ym[ip];
132     t.zm[ip] = zm[ip];
133     t.resx[ip] = resx[ip];
134     t.resy[ip] = resy[ip];
135 pam-fi 1.32 t.tailx[ip] = tailx[ip];
136     t.taily[ip] = taily[ip];
137 pam-fi 1.21 t.xv[ip] = xv[ip];
138     t.yv[ip] = yv[ip];
139     t.zv[ip] = zv[ip];
140     t.axv[ip] = axv[ip];
141     t.ayv[ip] = ayv[ip];
142     t.dedx_x[ip] = dedx_x[ip];
143     t.dedx_y[ip] = dedx_y[ip];
144    
145     };
146 pam-fi 1.32
147     // t.clx = TRefArray(clx);
148     // t.cly = TRefArray(cly);
149 pam-fi 1.21
150     };
151     //--------------------------------------
152     //
153     //
154     //--------------------------------------
155 mocchiut 1.1 /**
156     * Evaluates the trajectory in the apparatus associated to the track.
157     * It integrates the equations of motion in the magnetic field. The magnetic field should be previously loaded ( by calling TrkLevel2::LoadField() ), otherwise an error message is returned.
158     * @param t pointer to an object of the class Trajectory,
159     * which z coordinates should be previously initialized by calling the proper constructor ( Trajectory::Trajectory(int n, float* zin) ).
160     * @return error flag.
161     */
162     int TrkTrack::DoTrack(Trajectory* t){
163    
164     double *dxout = new double[t->npoint];
165     double *dyout = new double[t->npoint];
166     double *dzin = new double[t->npoint];
167     double dal[5];
168    
169     int ifail = 0;
170    
171     for (int i=0; i<5; i++) dal[i] = (double)al[i];
172     for (int i=0; i<t->npoint; i++) dzin[i] = (double)t->z[i];
173    
174 pam-fi 1.26 TrkParams::Load(1);
175     if( !TrkParams::IsLoaded(1) ){
176     cout << "int TrkTrack::DoTrack(Trajectory* t) --- ERROR --- m.field not loaded"<<endl;
177     return 0;
178     }
179 mocchiut 1.1 dotrack_(&(t->npoint),dzin,dxout,dyout,dal,&ifail);
180    
181     for (int i=0; i<t->npoint; i++){
182     t->x[i] = (float)*dxout++;
183     t->y[i] = (float)*dyout++;
184     }
185    
186     // delete [] dxout;
187     // delete [] dyout;
188     // delete [] dzin;
189    
190     return ifail;
191     };
192     //--------------------------------------
193     //
194     //
195     //--------------------------------------
196 pam-fi 1.2 /**
197     * Evaluates the trajectory in the apparatus associated to the track.
198     * It integrates the equations of motion in the magnetic field. The magnetic field should be previously loaded ( by calling TrkLevel2::LoadField() ), otherwise an error message is returned.
199     * @param t pointer to an object of the class Trajectory,
200     * which z coordinates should be previously initialized by calling the proper constructor ( Trajectory::Trajectory(int n, float* zin) ).
201     * @return error flag.
202     */
203     int TrkTrack::DoTrack2(Trajectory* t){
204    
205     double *dxout = new double[t->npoint];
206     double *dyout = new double[t->npoint];
207     double *dthxout = new double[t->npoint];
208     double *dthyout = new double[t->npoint];
209     double *dtlout = new double[t->npoint];
210     double *dzin = new double[t->npoint];
211     double dal[5];
212    
213     int ifail = 0;
214    
215     for (int i=0; i<5; i++) dal[i] = (double)al[i];
216     for (int i=0; i<t->npoint; i++) dzin[i] = (double)t->z[i];
217    
218 pam-fi 1.26 TrkParams::Load(1);
219     if( !TrkParams::IsLoaded(1) ){
220     cout << "int TrkTrack::DoTrack2(Trajectory* t) --- ERROR --- m.field not loaded"<<endl;
221     return 0;
222     }
223 pam-fi 1.2 dotrack2_(&(t->npoint),dzin,dxout,dyout,dthxout,dthyout,dtlout,dal,&ifail);
224    
225     for (int i=0; i<t->npoint; i++){
226     t->x[i] = (float)*dxout++;
227     t->y[i] = (float)*dyout++;
228     t->thx[i] = (float)*dthxout++;
229     t->thy[i] = (float)*dthyout++;
230     t->tl[i] = (float)*dtlout++;
231     }
232    
233     // delete [] dxout;
234     // delete [] dyout;
235     // delete [] dzin;
236    
237     return ifail;
238     };
239     //--------------------------------------
240     //
241     //
242     //--------------------------------------
243 mocchiut 1.1 //float TrkTrack::BdL(){
244     //};
245     //--------------------------------------
246     //
247     //
248     //--------------------------------------
249     Float_t TrkTrack::GetRigidity(){
250     Float_t rig=0;
251     if(chi2>0)rig=1./al[4];
252     if(rig<0) rig=-rig;
253     return rig;
254     };
255     //
256     Float_t TrkTrack::GetDeflection(){
257     Float_t def=0;
258     if(chi2>0)def=al[4];
259     return def;
260     };
261     //
262 pam-fi 1.32 /**
263     * Method to retrieve the dE/dx measured on a tracker view.
264     * @param ip plane (0-5)
265     * @param iv view (0=x 1=y)
266     */
267     Float_t TrkTrack::GetDEDX(int ip, int iv){
268     if(iv==0 && ip>=0 && ip<6)return fabs(dedx_x[ip]);
269     else if(iv==1 && ip>=0 && ip<6)return fabs(dedx_y[ip]);
270     else {
271     cout << "TrkTrack::GetDEDX(int ip, int iv) -- wrong input parameters "<<ip<<iv<<endl;
272     return 0.;
273     }
274     }
275     /**
276     * Method to evaluate the dE/dx measured on a tracker plane.
277     * The two measurements on x- and y-view are averaged.
278     * @param ip plane (0-5)
279     */
280     Float_t TrkTrack::GetDEDX(int ip){
281     if( (Int_t)XGood(ip)+(Int_t)YGood(ip) == 0 ) return 0;
282     return (GetDEDX(ip,0)+GetDEDX(ip,1))/((Int_t)XGood(ip)+(Int_t)YGood(ip));
283     };
284    
285     /**
286     * Method to evaluate the dE/dx averaged over all planes.
287     */
288 mocchiut 1.1 Float_t TrkTrack::GetDEDX(){
289 pam-fi 1.32 Float_t dedx=0;
290     for(Int_t ip=0; ip<6; ip++)dedx+=GetDEDX(ip,0)*XGood(ip)+GetDEDX(ip,1)*YGood(ip);
291     dedx = dedx/(GetNX()+GetNY());
292     return dedx;
293     };
294     /**
295     * Returns 1 if the cluster on a tracker view includes bad strips.
296     * @param ip plane (0-5)
297     * @param iv view (0=x 1=y)
298     */
299     Bool_t TrkTrack::IsBad(int ip,int iv){
300     if(iv==0 && ip>=0 && ip<6)return (xgood[ip]<0) ;
301     else if(iv==1 && ip>=0 && ip<6)return (ygood[ip]<0) ;
302     else {
303     cout << "TrkTrack::IsBad(int ip, int iv) -- wrong input parameters "<<ip<<iv<<endl;
304     return 0.;
305     }
306 mocchiut 1.1 };
307 pam-fi 1.32 /**
308     * Returns 1 if the signal on a tracker view is saturated.
309     * @param ip plane (0-5)
310     * @param iv view (0=x 1=y)
311     */
312     Bool_t TrkTrack::IsSaturated(int ip,int iv){
313     if(iv==0 && ip>=0 && ip<6)return (dedx_x[ip]<0) ;
314     else if(iv==1 && ip>=0 && ip<6)return (dedx_y[ip]<0) ;
315     else {
316     cout << "TrkTrack::IsSaturated(int ip, int iv) -- wrong input parameters "<<ip<<iv<<endl;
317     return 0.;
318     }
319     };
320     /**
321     * Returns 1 if either the x or the y signal on a tracker plane is saturated.
322     * @param ip plane (0-5)
323     */
324     Bool_t TrkTrack::IsSaturated(int ip){
325     return (IsSaturated(ip,0)||IsSaturated(ip,1));
326     };
327     /**
328     * Returns 1 if there is at least a saturated signal along the track.
329     */
330     Bool_t TrkTrack::IsSaturated(){
331     for(int ip=0; ip<6; ip++)for(int iv=0; iv<2; iv++)if(IsSaturated(ip,iv))return true;
332     return false;
333     }
334     /**
335     * Returns the track "lever-arm" on the x view, defined as the distance (in planes) between
336     * the upper and lower x measurements (the maximum value of lever-arm is 6).
337     */
338     Int_t TrkTrack::GetLeverArmX(){
339     int first_plane = -1;
340     int last_plane = -1;
341     for(Int_t ip=0; ip<6; ip++){
342     if( XGood(ip) && first_plane == -1 )first_plane = ip;
343     if( XGood(ip) && first_plane != -1 )last_plane = ip;
344     }
345     if( first_plane == -1 || last_plane == -1){
346     cout<< "Int_t TrkTrack::GetLeverArmX() -- XGood(ip) always false ??? "<<endl;
347     return 0;
348     }
349     return (last_plane-first_plane+1);
350     }
351     /**
352     * Returns the track "lever-arm" on the y view, defined as the distance (in planes) between
353     * the upper and lower y measurements (the maximum value of lever-arm is 6).
354     */
355     Int_t TrkTrack::GetLeverArmY(){
356     int first_plane = -1;
357     int last_plane = -1;
358     for(Int_t ip=0; ip<6; ip++){
359     if( YGood(ip) && first_plane == -1 )first_plane = ip;
360     if( YGood(ip) && first_plane != -1 )last_plane = ip;
361     }
362     if( first_plane == -1 || last_plane == -1){
363     cout<< "Int_t TrkTrack::GetLeverArmY() -- YGood(ip) always false ??? "<<endl;
364     return 0;
365     }
366     return (last_plane-first_plane+1);
367     }
368 pam-fi 1.37 /**
369     * Returns the reduced chi-square of track x-projection
370     */
371     Float_t TrkTrack::GetChi2X(){
372     float chiq=0;
373     for(int ip=0; ip<6; ip++)if(XGood(ip))chiq+= pow((xv[ip]-xm[ip])/resx[ip],2.);
374     if(GetNX()>3)chiq=chiq/(GetNX()-3);
375     else chiq=0;
376     if(chiq==0)cout << " Float_t TrkTrack::GetChi2X() -- WARNING -- value not defined "<<chiq<<endl;
377     return chiq;
378     }
379     /**
380     * Returns the reduced chi-square of track y-projection
381     */
382     Float_t TrkTrack::GetChi2Y(){
383     float chiq=0;
384     for(int ip=0; ip<6; ip++)if(YGood(ip))chiq+= pow((yv[ip]-ym[ip])/resy[ip],2.);
385     if(GetNY()>2)chiq=chiq/(GetNY()-2);
386     else chiq=0;
387     if(chiq==0)cout << " Float_t TrkTrack::GetChi2Y() -- WARNING -- value not defined "<<chiq<<endl;
388     return chiq;
389     }
390     /**
391     * Returns the logarythm of the likeliwood-function of track x-projection
392     */
393     Float_t TrkTrack::GetLnLX(){
394     float lnl=0;
395     for(int ip=0; ip<6; ip++)
396     if( XGood(ip) && tailx[ip]!=0 )
397     lnl += (tailx[ip]+1.) * log( (tailx[ip]*pow(resx[ip],2.) + pow(xv[ip]-xm[ip],2.)) / (tailx[ip]*pow(resx[ip],2)) );
398     if(GetNX()>3)lnl=lnl/(GetNX()-3);
399     else lnl=0;
400 pam-fi 1.38 if(lnl==0){
401     cout << " Float_t TrkTrack::GetLnLX() -- WARNING -- value not defined "<<lnl<<endl;
402     Dump();
403     }
404 pam-fi 1.37 return lnl;
405    
406     }
407     /**
408     * Returns the logarythm of the likeliwood-function of track y-projection
409     */
410     Float_t TrkTrack::GetLnLY(){
411     float lnl=0;
412     for(int ip=0; ip<6; ip++)
413     if( YGood(ip) && taily[ip]!=0 )
414     lnl += (taily[ip]+1.) * log( (taily[ip]*pow(resy[ip],2.) + pow(yv[ip]-ym[ip],2.)) / (taily[ip]*pow(resy[ip],2)) );
415     if(GetNY()>2)lnl=lnl/(GetNY()-2);
416     else lnl=0;
417 pam-fi 1.38 if(lnl==0){
418     cout << " Float_t TrkTrack::GetLnLY() -- WARNING -- value not defined "<<lnl<<endl;
419     Dump();
420     }
421 pam-fi 1.37 return lnl;
422    
423     }
424 pam-fi 1.39 /**
425     * Returns the effective angle, relative to the sensor, on each plane.
426     * @param ip plane (0-5)
427     * @param iv view (0=x 1=y)
428     */
429     Float_t TrkTrack::GetEffectiveAngle(int ip, int iv){
430    
431     if(ip<0 || ip>5){
432     cout << "Float_t TrkTrack::GetEffectiveAngle(int "<<ip<<", int "<<iv<<") ==> wrong input"<<endl;
433     return 0.;
434     }
435    
436     float v[3]={xv[ip],yv[ip],zv[ip]};
437     //-----------------------------------------
438     // effective angle (relative to the sensor)
439     //-----------------------------------------
440     float axv_geo = axv[ip];
441     float muhall_h = 297.61; //cm**2/Vs
442     float BY = TrkParams::GetBY(v);
443     float axv_eff = 0;
444     if(ip==5) axv_geo = -1*axv_geo;
445     if(ip==5) BY = -1*BY;
446     axv_eff = 180.*atan( tan(axv_geo*acos(-1.)/180.) + muhall_h * BY * 0.0001)/acos(-1.);
447     //-----------------------------------------
448     // effective angle (relative to the sensor)
449     //-----------------------------------------
450     float ayv_geo = ayv[ip];
451     float muhall_e = 1258.18; //cm**2/Vs
452     float BX = TrkParams::GetBX(v);
453     float ayv_eff = 0;
454     ayv_eff = 180.*atan( tan(ayv_geo*acos(-1.)/180.) + muhall_e * BX * 0.0001)/acos(-1.);
455    
456     if (iv==0)return axv_eff;
457     else if(iv==1)return ayv_eff;
458     else{
459     cout << "Float_t TrkTrack::GetEffectiveAngle(int "<<ip<<", int "<<iv<<") ==> wrong input"<<endl;
460     return 0.;
461     }
462    
463     };
464    
465 mocchiut 1.1 //--------------------------------------
466     //
467     //
468     //--------------------------------------
469     void TrkTrack::Dump(){
470     cout << endl << "========== Track " ;
471 pam-fi 1.13 cout << endl << "seq. n. : "<< seqno;
472     cout << endl << "image n. : "<< image;
473     cout << endl << "al : "; for(int i=0; i<5; i++)cout << al[i] << " ";
474 mocchiut 1.1 cout << endl << "chi^2 : "<< chi2;
475 pam-fi 1.13 cout << endl << "n.step : "<< nstep;
476 pam-fi 1.30 cout << endl << "xgood : "; for(int i=0; i<6; i++)cout << XGood(i) ;
477     cout << endl << "ygood : "; for(int i=0; i<6; i++)cout << YGood(i) ;
478 mocchiut 1.1 cout << endl << "xm : "; for(int i=0; i<6; i++)cout << xm[i] << " ";
479     cout << endl << "ym : "; for(int i=0; i<6; i++)cout << ym[i] << " ";
480     cout << endl << "zm : "; for(int i=0; i<6; i++)cout << zm[i] << " ";
481 pam-fi 1.13 cout << endl << "xv : "; for(int i=0; i<6; i++)cout << xv[i] << " ";
482     cout << endl << "yv : "; for(int i=0; i<6; i++)cout << yv[i] << " ";
483     cout << endl << "zv : "; for(int i=0; i<6; i++)cout << zv[i] << " ";
484     cout << endl << "resx : "; for(int i=0; i<6; i++)cout << resx[i] << " ";
485     cout << endl << "resy : "; for(int i=0; i<6; i++)cout << resy[i] << " ";
486 pam-fi 1.34 cout << endl << "tailx : "; for(int i=0; i<6; i++)cout << tailx[i] << " ";
487     cout << endl << "taily : "; for(int i=0; i<6; i++)cout << taily[i] << " ";
488 pam-fi 1.13 cout << endl << "coval : "; for(int i=0; i<5; i++)cout << coval[0][i]<<" ";
489     cout << endl << " "; for(int i=0; i<5; i++)cout << coval[1][i]<<" ";
490     cout << endl << " "; for(int i=0; i<5; i++)cout << coval[2][i]<<" ";
491     cout << endl << " "; for(int i=0; i<5; i++)cout << coval[3][i]<<" ";
492     cout << endl << " "; for(int i=0; i<5; i++)cout << coval[4][i]<<" ";
493 mocchiut 1.1 cout << endl << "dedx_x : "; for(int i=0; i<6; i++)cout << dedx_x[i] << " ";
494     cout << endl << "dedx_y : "; for(int i=0; i<6; i++)cout << dedx_y[i] << " ";
495 pam-fi 1.14 cout << endl;
496 mocchiut 1.1 }
497 pam-fi 1.13 /**
498     * Set the TrkTrack position measurements
499     */
500     void TrkTrack::SetMeasure(double *xmeas, double *ymeas, double *zmeas){
501     for(int i=0; i<6; i++) xm[i]=*xmeas++;
502     for(int i=0; i<6; i++) ym[i]=*ymeas++;
503     for(int i=0; i<6; i++) zm[i]=*zmeas++;
504     }
505     /**
506     * Set the TrkTrack position resolution
507     */
508     void TrkTrack::SetResolution(double *rx, double *ry){
509     for(int i=0; i<6; i++) resx[i]=*rx++;
510     for(int i=0; i<6; i++) resy[i]=*ry++;
511     }
512     /**
513 pam-fi 1.34 * Set the TrkTrack tails position resolution
514     */
515     void TrkTrack::SetTail(double *tx, double *ty, double factor){
516     for(int i=0; i<6; i++) tailx[i]=factor*(*tx++);
517     for(int i=0; i<6; i++) taily[i]=factor*(*ty++);
518     }
519     /**
520     * Set the TrkTrack Student parameter (resx,resy,tailx,taily)
521     * from previous gausian fit
522     *@param flag =0 standard, =1 with noise correction
523     */
524     void TrkTrack::SetStudentParam(int flag){
525     float sx[11]={0.000128242,
526     0.000136942,
527     0.000162718,
528     0.000202644,
529     0.00025597,
530     0.000317456,
531     0.000349048,
532     0.000384638,
533     0.000457295,
534     0.000512319,
535     0.000538573};
536     float tx[11]={1.79402,
537     2.04876,
538     2.88376,
539     3.3,
540     3.14084,
541     4.07686,
542     4.44736,
543     3.5179,
544     3.38697,
545     3.45739,
546     3.18627};
547     float sy[11]={0.000483075,
548     0.000466925,
549     0.000431658,
550     0.000428317,
551     0.000433854,
552     0.000444044,
553     0.000482098,
554     0.000537579,
555     0.000636279,
556     0.000741998,
557     0.000864261};
558     float ty[11]={0.997032,
559     1.11147,
560     1.18526,
561     1.61404,
562     2.21908,
563     3.08959,
564     4.48833,
565     4.42687,
566     4.65253,
567     4.52043,
568     4.29926};
569     int index;
570     float fact;
571     for(int i=0; i<6; i++) {
572     index = int((fabs(axv[i])+1.)/2.);
573     if(index>10) index=10;
574     tailx[i]=tx[index];
575     if(flag==1) {
576     if(fabs(axv[i])<=10.) fact = resx[i]/risxeta2_(&(axv[i]));
577     if(fabs(axv[i])>10.&&fabs(axv[i])<=15.) fact = resx[i]/risxeta3_(&(axv[i]));
578     if(fabs(axv[i])>15.) fact = resx[i]/risxeta4_(&(axv[i]));
579     } else fact = 1.;
580     resx[i] = sx[index]*fact;
581     }
582     for(int i=0; i<6; i++) {
583     index = int((fabs(ayv[i])+1.)/2.);
584     if(index>10) index=10;
585     taily[i]=ty[index];
586     if(flag==1) fact = resy[i]/risyeta2_(&(ayv[i]));
587     else fact = 1.;
588     resy[i] = sy[index]*fact;
589     }
590     }
591     /**
592     * Set the TrkTrack good measurement
593 pam-fi 1.13 */
594     void TrkTrack::SetGood(int *xg, int *yg){
595 pam-fi 1.33
596 pam-fi 1.13 for(int i=0; i<6; i++) xgood[i]=*xg++;
597     for(int i=0; i<6; i++) ygood[i]=*yg++;
598     }
599    
600     /**
601     * Load the magnetic field
602     */
603 pam-fi 1.16 void TrkTrack::LoadField(TString path){
604    
605 pam-fi 1.26 // strcpy(path_.path,path.Data());
606     // path_.pathlen = path.Length();
607     // path_.error = 0;
608     // readb_();
609    
610 pam-fi 1.33 TrkParams::SetTrackingMode();
611     TrkParams::SetPrecisionFactor();
612     TrkParams::SetStepMin();
613    
614 pam-fi 1.26 TrkParams::Set(path,1);
615 pam-fi 1.28 TrkParams::Load(1);
616 pam-fi 1.16
617 pam-fi 1.13 };
618 pam-fi 1.19
619 pam-fi 1.25
620 pam-fi 1.19 /**
621     * Method to fill minimization-routine common
622     */
623     void TrkTrack::FillMiniStruct(cMini2track& track){
624    
625     for(int i=0; i<6; i++){
626    
627 pam-fi 1.33 // cout << i<<" - "<<xgood[i]<<" "<<XGood(i)<<endl;
628     // cout << i<<" - "<<ygood[i]<<" "<<YGood(i)<<endl;
629 pam-fi 1.30 track.xgood[i]=XGood(i);
630     track.ygood[i]=YGood(i);
631 pam-fi 1.19
632     track.xm[i]=xm[i];
633     track.ym[i]=ym[i];
634     track.zm[i]=zm[i];
635    
636     // --- temporaneo ----------------------------
637     // andrebbe inserita la dimensione del sensore
638     float segment = 100.;
639     track.xm_a[i]=xm[i];
640     track.xm_b[i]=xm[i];
641     track.ym_a[i]=ym[i];
642     track.ym_b[i]=ym[i];
643 pam-fi 1.30 if( XGood(i) && !YGood(i) ){
644 pam-fi 1.19 track.ym_a[i] = track.ym_a[i]+segment;
645     track.ym_b[i] = track.ym_b[i]-segment;
646 pam-fi 1.30 }else if( !XGood(i) && YGood(i)){
647 pam-fi 1.19 track.xm_a[i] = track.xm_a[i]+segment;
648     track.xm_b[i] = track.xm_b[i]-segment;
649     }
650     // --- temporaneo ----------------------------
651    
652     track.resx[i]=resx[i];
653     track.resy[i]=resy[i];
654 pam-fi 1.34 track.tailx[i]=tailx[i];
655     track.taily[i]=taily[i];
656 pam-fi 1.19 }
657    
658     for(int i=0; i<5; i++) track.al[i]=al[i];
659     track.zini = 23.5;
660     // ZINI = 23.5 !!! it should be the same parameter in all codes
661    
662     }
663     /**
664     * Method to set values from minimization-routine common
665     */
666     void TrkTrack::SetFromMiniStruct(cMini2track *track){
667    
668     for(int i=0; i<5; i++) {
669     al[i]=track->al[i];
670     for(int j=0; j<5; j++) coval[i][j]=track->cov[i][j];
671     }
672     chi2 = track->chi2;
673     nstep = track->nstep;
674     for(int i=0; i<6; i++){
675     xv[i] = track->xv[i];
676     yv[i] = track->yv[i];
677     zv[i] = track->zv[i];
678     xm[i] = track->xm[i];
679     ym[i] = track->ym[i];
680     zm[i] = track->zm[i];
681     axv[i] = track->axv[i];
682     ayv[i] = track->ayv[i];
683     }
684    
685     }
686 pam-fi 1.13 /**
687 pam-fi 1.33 * \brief Method to re-evaluate coordinates of clusters associated with a track.
688     *
689     * The method can be applied only after recovering level1 information
690     * (either by reprocessing single events from level0 or from
691     * the TrkLevel1 branch, if present); it calls F77 subroutines that
692     * read the level1 common and fill the minimization-routine common.
693     * Some clusters can be excluded or added by means of the methods:
694     *
695     * TrkTrack::ResetXGood(int ip)
696     * TrkTrack::ResetYGood(int ip)
697     * TrkTrack::SetXGood(int ip, int cid, int is)
698     * TrkTrack::SetYGood(int ip, int cid, int is)
699     *
700     * NB! The method TrkTrack::SetGood(int *xg, int *yg) set the plane-mask (0-1)
701     * for the minimization-routine common. It deletes the cluster information
702     * (at least for the moment...) thus cannot be applied before
703     * TrkTrack::EvaluateClusterPositions().
704     *
705     * Different p.f.a. can be applied by calling (once) the method:
706     *
707     * TrkParams::SetPFA(0); //Set ETA p.f.a.
708     *
709     * @see TrkParams::SetPFA(int)
710     */
711 pam-fi 1.36 Bool_t TrkTrack::EvaluateClusterPositions(){
712 pam-fi 1.33
713     // cout << "void TrkTrack::GetClusterPositions() "<<endl;
714    
715     TrkParams::Load( );
716 pam-fi 1.36 if( !TrkParams::IsLoaded() )return false;
717 pam-fi 1.33
718     for(int ip=0; ip<6; ip++){
719     // cout << ip<<" ** "<<xm[ip]<<" / "<<ym[ip]<<endl;;
720     int icx = GetClusterX_ID(ip)+1;
721     int icy = GetClusterY_ID(ip)+1;
722     int sensor = GetSensor(ip)+1;//<< convenzione "Paolo"
723     if(ip==5 && sensor!=0)sensor=3-sensor;//<< convenzione "Elena"
724     int ladder = GetLadder(ip)+1;
725     float ax = axv[ip];
726     float ay = ayv[ip];
727     float v[3];
728     v[0]=xv[ip];
729     v[1]=yv[ip];
730     v[2]=zv[ip];
731     float bfx = 10*TrkParams::GetBX(v);//Tesla
732     float bfy = 10*TrkParams::GetBY(v);//Tesla
733     int ipp=ip+1;
734     xyzpam_(&ipp,&icx,&icy,&ladder,&sensor,&ax,&ay,&bfx,&bfy);
735 pam-fi 1.36 if(icx<0 || icy<0)return false;
736 pam-fi 1.33 }
737 pam-fi 1.36 return true;
738 pam-fi 1.33 }
739     /**
740     * \brief Tracking method. It calls F77 mini routine.
741     *
742     * @param pfixed Particle momentum. If pfixed=0 the momentum
743     * is left as a free parameter, otherwise it is fixed to the input value.
744     * @param fail Output flag (!=0 if the fit failed).
745     * @param iprint Flag to set debug mode ( 0 = no output; 1 = verbose; 2 = debug).
746     * @param froml1 Flag to re-evaluate positions (see TrkTrack::GetClusterPositions()).
747     *
748     * The option to re-evaluate positions can be used only after recovering
749     * level1 information, eg. by reprocessing the single event.
750     *
751     * Example:
752     *
753     * if( !event->GetTrkLevel0() )return false;
754     * event->GetTrkLevel0()->ProcessEvent(); // re-processing level0->level1
755     * int fail=0;
756     * event->GetTrkLevel2()->GetTrack(0)->Fit(0.,fail,0,1);
757     *
758     * @see EvaluateClusterPositions()
759     *
760     * The fitting procedure can be varied by changing the tracking mode,
761     * the fit-precision factor and the minimum number of step.
762     * @see SetTrackingMode(int)
763     * @see SetPrecisionFactor(double)
764     * @see SetStepMin(int)
765 pam-fi 1.13 */
766 pam-fi 1.33 void TrkTrack::Fit(double pfixed, int& fail, int iprint, int froml1){
767 pam-fi 1.15
768     float al_ini[] = {0.,0.,0.,0.,0.};
769    
770 pam-fi 1.33 TrkParams::Load( );
771     if( !TrkParams::IsLoaded() )return;
772    
773 pam-fi 1.13 extern cMini2track track_;
774     fail = 0;
775 pam-fi 1.36
776 pam-fi 1.19 FillMiniStruct(track_);
777 pam-fi 1.36
778     if(froml1!=0){
779     if( !EvaluateClusterPositions() ){
780     cout << "void TrkTrack::Fit("<<pfixed<<","<<fail<<","<<iprint<<","<<froml1<<") --- ERROR evaluating cluster positions "<<endl;
781     FillMiniStruct(track_) ;
782     fail = 1;
783     return;
784     }
785     }else{
786     FillMiniStruct(track_);
787     }
788 pam-fi 1.33
789 pam-fi 1.19 // if fit variables have been reset, evaluate the initial guess
790 pam-fi 1.15 if(al[0]==-9999.&&al[1]==-9999.&&al[2]==-9999.&&al[3]==-9999.&&al[4]==-9999.)guess_();
791    
792 pam-fi 1.16 // --------------------- free momentum
793 pam-fi 1.14 if(pfixed==0.) {
794 pam-fi 1.19 track_.pfixed=0.;
795 pam-fi 1.14 }
796 pam-fi 1.16 // --------------------- fixed momentum
797 pam-fi 1.13 if(pfixed!=0.) {
798 pam-fi 1.19 al[4]=1./pfixed;
799     track_.pfixed=pfixed;
800 pam-fi 1.13 }
801 pam-fi 1.15
802 pam-fi 1.19 // store temporarily the initial guess
803 pam-fi 1.15 for(int i=0; i<5; i++) al_ini[i]=track_.al[i];
804    
805 pam-fi 1.19 // ------------------------------------------
806     // call mini routine
807 pam-fi 1.33 // TrkParams::Load(1);
808     // if( !TrkParams::IsLoaded(1) ){
809     // cout << "void TrkTrack::Fit(double pfixed, int& fail, int iprint) --- ERROR --- m.field not loaded"<<endl;
810     // return;
811     // }
812 pam-fi 1.13 int istep=0;
813     int ifail=0;
814     mini2_(&istep,&ifail, &iprint);
815     if(ifail!=0) {
816 pam-fi 1.19 if(iprint)cout << "ERROR: ifail= " << ifail << endl;
817 pam-fi 1.13 fail = 1;
818     }
819 pam-fi 1.19 // ------------------------------------------
820 pam-fi 1.15
821 pam-fi 1.19 SetFromMiniStruct(&track_);
822 pam-fi 1.15
823 pam-fi 1.20 if(fail){
824 pam-fi 1.33 if(iprint)cout << " >>>> fit failed "<<endl;
825 pam-fi 1.20 for(int i=0; i<5; i++) al[i]=al_ini[i];
826     }
827 pam-fi 1.15
828 pam-fi 1.13 };
829 pam-fi 1.33 /**
830 pam-fi 1.15 * Reset the fit parameters
831 pam-fi 1.13 */
832     void TrkTrack::FitReset(){
833     for(int i=0; i<5; i++) al[i]=-9999.;
834     chi2=0.;
835     nstep=0;
836 pam-fi 1.33 // for(int i=0; i<6; i++) xv[i]=0.;
837     // for(int i=0; i<6; i++) yv[i]=0.;
838     // for(int i=0; i<6; i++) zv[i]=0.;
839     // for(int i=0; i<6; i++) axv[i]=0.;
840     // for(int i=0; i<6; i++) ayv[i]=0.;
841 pam-fi 1.13 for(int i=0; i<5; i++) {
842     for(int j=0; j<5; j++) coval[i][j]=0.;
843     }
844     }
845 pam-fi 1.33 /**
846 pam-fi 1.31 * Set the tracking mode
847     */
848 pam-fi 1.27 void TrkTrack::SetTrackingMode(int trackmode){
849     extern cMini2track track_;
850     track_.trackmode = trackmode;
851     }
852 pam-fi 1.33 /**
853 pam-fi 1.31 * Set the factor scale for tracking precision
854     */
855     void TrkTrack::SetPrecisionFactor(double fact){
856     extern cMini2track track_;
857     track_.fact = fact;
858     }
859 pam-fi 1.33 /**
860 pam-fi 1.34 * Set the minimum number of steps for tracking precision
861 pam-fi 1.31 */
862     void TrkTrack::SetStepMin(int istepmin){
863     extern cMini2track track_;
864     track_.istepmin = istepmin;
865     }
866 pam-fi 1.35 /**
867     * Returns 1 if the track is inside the magnet cavity
868     * Set the minimum number of steps for tracking precision
869     */
870     Bool_t TrkTrack::IsInsideCavity(){
871     float xmagntop, ymagntop, xmagnbottom, ymagnbottom;
872     xmagntop = xv[0] + (ZMAGNHIGH-zv[0])*tan(cos(-1.0)*axv[0]/180.);
873     ymagntop = yv[0] + (ZMAGNHIGH-zv[0])*tan(cos(-1.0)*ayv[0]/180.);
874     xmagnbottom = xv[5] + (ZMAGNLOW-zv[5])*tan(cos(-1.0)*axv[5]/180.);
875     ymagnbottom = yv[5] + (ZMAGNLOW-zv[5])*tan(cos(-1.0)*ayv[5]/180.);
876     if( xmagntop>XMAGNLOW && xmagntop<XMAGNHIGH &&
877     ymagntop>YMAGNLOW && ymagntop<YMAGNHIGH &&
878     xmagnbottom>XMAGNLOW && xmagnbottom<XMAGNHIGH &&
879     ymagnbottom>YMAGNLOW && ymagnbottom<YMAGNHIGH ) return(true);
880     else return(false);
881     }
882 pam-fi 1.33 /**
883 pam-fi 1.32 * Method to retrieve ID (0,1,...) of x-cluster (if any) associated to this track.
884     * If no cluster is associated, ID=-1.
885 pam-fi 1.29 * @param ip Tracker plane (0-5)
886     */
887 pam-fi 1.32 Int_t TrkTrack::GetClusterX_ID(int ip){
888     return ((Int_t)fabs(xgood[ip]))%10000000-1;
889 pam-fi 1.29 };
890 pam-fi 1.33 /**
891 pam-fi 1.32 * Method to retrieve ID (0-xxx) of y-cluster (if any) associated to this track.
892     * If no cluster is associated, ID=-1.
893 pam-fi 1.29 * @param ip Tracker plane (0-5)
894     */
895 pam-fi 1.32 Int_t TrkTrack::GetClusterY_ID(int ip){
896     return ((Int_t)fabs(ygood[ip]))%10000000-1;
897     };
898 pam-fi 1.33 /**
899 pam-fi 1.32 * Method to retrieve the ladder (0-4, increasing x) traversed by the track on this plane.
900     * If no ladder is traversed (dead area) the metod retuns -1.
901     * @param ip Tracker plane (0-5)
902     */
903     Int_t TrkTrack::GetLadder(int ip){
904     if(XGood(ip))return (Int_t)fabs(xgood[ip]/100000000)-1;
905     if(YGood(ip))return (Int_t)fabs(ygood[ip]/100000000)-1;
906     return -1;
907     };
908 pam-fi 1.33 /**
909 pam-fi 1.32 * Method to retrieve the sensor (0-1, increasing y) traversed by the track on this plane.
910     * If no sensor is traversed (dead area) the metod retuns -1.
911     * @param ip Tracker plane (0-5)
912     */
913     Int_t TrkTrack::GetSensor(int ip){
914     if(XGood(ip))return (Int_t)((Int_t)fabs(xgood[ip]/10000000)%10)-1;
915     if(YGood(ip))return (Int_t)((Int_t)fabs(ygood[ip]/10000000)%10)-1;
916     return -1;
917 pam-fi 1.29 };
918    
919 pam-fi 1.33 /**
920     * \brief Method to include a x-cluster to the track.
921     * @param ip Tracker plane (0-5)
922     * @param clid Cluster ID (0,1,...)
923     * @param is Sensor (0-1, increasing y)
924     * @see Fit(double pfixed, int& fail, int iprint, int froml1)
925     */
926     void TrkTrack::SetXGood(int ip, int clid, int is){
927     int il=0; //ladder (temporary)
928     bool bad=false; //ladder (temporary)
929     xgood[ip]=il*100000000+is*10000000+clid;
930     if(bad)xgood[ip]=-xgood[ip];
931     };
932     /**
933     * \brief Method to include a y-cluster to the track.
934     * @param ip Tracker plane (0-5)
935     * @param clid Cluster ID (0,1,...)
936     * @param is Sensor (0-1)
937     * @see Fit(double pfixed, int& fail, int iprint, int froml1)
938     */
939     void TrkTrack::SetYGood(int ip, int clid, int is){
940     int il=0; //ladder (temporary)
941     bool bad=false; //ladder (temporary)
942     ygood[ip]=il*100000000+is*10000000+clid;
943     if(bad)ygood[ip]=-ygood[ip];
944     };
945 pam-fi 1.29
946 mocchiut 1.1 //--------------------------------------
947     //
948     //
949     //--------------------------------------
950 pam-fi 1.10 void TrkTrack::Clear(){
951 pam-fi 1.21 // cout << "TrkTrack::Clear()"<<endl;
952     seqno = -1;
953     image = -1;
954     chi2 = 0;
955     nstep = 0;
956     for(int it1=0;it1<5;it1++){
957     al[it1] = 0;
958     for(int it2=0;it2<5;it2++)coval[it1][it2] = 0;
959     };
960     for(int ip=0;ip<6;ip++){
961     xgood[ip] = 0;
962     ygood[ip] = 0;
963     xm[ip] = 0;
964     ym[ip] = 0;
965     zm[ip] = 0;
966     resx[ip] = 0;
967     resy[ip] = 0;
968 pam-fi 1.32 tailx[ip] = 0;
969     taily[ip] = 0;
970 pam-fi 1.21 xv[ip] = 0;
971     yv[ip] = 0;
972     zv[ip] = 0;
973     axv[ip] = 0;
974     ayv[ip] = 0;
975     dedx_x[ip] = 0;
976     dedx_y[ip] = 0;
977    
978     };
979 pam-fi 1.32 // if(clx)clx->Clear();
980     // if(cly)cly->Clear();
981     // clx.Clear();
982     // cly.Clear();
983 pam-fi 1.10 };
984     //--------------------------------------
985     //
986     //
987     //--------------------------------------
988 pam-fi 1.11 void TrkTrack::Delete(){
989 pam-fi 1.21 // cout << "TrkTrack::Delete()"<<endl;
990 pam-fi 1.32 Clear();
991     // if(clx)delete clx;
992     // if(cly)delete cly;
993 pam-fi 1.11 };
994 pam-fi 1.21 //--------------------------------------
995 pam-fi 1.11 //
996     //
997     //--------------------------------------
998 pam-fi 1.10
999     //--------------------------------------
1000     //
1001     //
1002     //--------------------------------------
1003 mocchiut 1.1 TrkSinglet::TrkSinglet(){
1004 pam-fi 1.21 // cout << "TrkSinglet::TrkSinglet() " << GetUniqueID()<<endl;
1005 mocchiut 1.1 plane = 0;
1006     coord[0] = 0;
1007     coord[1] = 0;
1008     sgnl = 0;
1009 pam-fi 1.21 // cls = 0;
1010 mocchiut 1.1 };
1011     //--------------------------------------
1012     //
1013     //
1014     //--------------------------------------
1015     TrkSinglet::TrkSinglet(const TrkSinglet& s){
1016 pam-fi 1.21 // cout << "TrkSinglet::TrkSinglet(const TrkSinglet& s) " << GetUniqueID()<<endl;
1017 mocchiut 1.1 plane = s.plane;
1018     coord[0] = s.coord[0];
1019     coord[1] = s.coord[1];
1020     sgnl = s.sgnl;
1021 pam-fi 1.9 // cls = 0;//<<<<pointer
1022 pam-fi 1.32 // cls = TRef(s.cls);
1023 mocchiut 1.1 };
1024     //--------------------------------------
1025     //
1026     //
1027     //--------------------------------------
1028     void TrkSinglet::Dump(){
1029     int i=0;
1030     cout << endl << "========== Singlet " ;
1031     cout << endl << "plane : " << plane;
1032     cout << endl << "coord[2] : "; while( i<2 && cout << coord[i] << " ") i++;
1033     cout << endl << "sgnl : " << sgnl;
1034     }
1035     //--------------------------------------
1036     //
1037     //
1038     //--------------------------------------
1039 pam-fi 1.21 void TrkSinglet::Clear(){
1040     // cout << "TrkSinglet::Clear() " << GetUniqueID()<<endl;
1041     // cls=0;
1042     plane=-1;
1043     coord[0]=-999;
1044     coord[1]=-999;
1045     sgnl=0;
1046    
1047     }
1048     //--------------------------------------
1049     //
1050     //
1051     //--------------------------------------
1052 mocchiut 1.1 TrkLevel2::TrkLevel2(){
1053 mocchiut 1.24 // cout <<"TrkLevel2::TrkLevel2()"<<endl;
1054 mocchiut 1.1 for(Int_t i=0; i<12 ; i++){
1055 pam-fi 1.32 good[i] = -1;
1056     VKmask[i] = 0;
1057     VKflag[i] = 0;
1058     };
1059 pam-fi 1.21 Track = 0;
1060     SingletX = 0;
1061     SingletY = 0;
1062 pam-fi 1.6
1063 mocchiut 1.1 }
1064     //--------------------------------------
1065     //
1066     //
1067     //--------------------------------------
1068 pam-fi 1.23 void TrkLevel2::Set(){
1069     if(!Track)Track = new TClonesArray("TrkTrack");
1070     if(!SingletX)SingletX = new TClonesArray("TrkSinglet");
1071     if(!SingletY)SingletY = new TClonesArray("TrkSinglet");
1072     }
1073     //--------------------------------------
1074     //
1075     //
1076     //--------------------------------------
1077 mocchiut 1.1 void TrkLevel2::Dump(){
1078 pam-fi 1.10
1079     //
1080 mocchiut 1.1 cout << endl << endl << "=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-=-";
1081 pam-fi 1.10 cout << endl << "good : "; for(int i=0; i<12; i++) cout << good[i]<<" ";
1082 mocchiut 1.1 cout << endl << "ntrk() : " << this->ntrk() ;
1083     cout << endl << "nclsx() : " << this->nclsx();
1084     cout << endl << "nclsy() : " << this->nclsy();
1085 pam-fi 1.21 if(Track){
1086     TClonesArray &t = *Track;
1087     for(int i=0; i<ntrk(); i++) ((TrkTrack *)t[i])->Dump();
1088     }
1089     if(SingletX){
1090     TClonesArray &sx = *SingletX;
1091     for(int i=0; i<nclsx(); i++) ((TrkSinglet *)sx[i])->Dump();
1092     }
1093     if(SingletY){
1094     TClonesArray &sy = *SingletY;
1095     for(int i=0; i<nclsy(); i++) ((TrkSinglet *)sy[i])->Dump();
1096     }
1097 mocchiut 1.1 }
1098 pam-fi 1.36 /**
1099     * \brief Dump processing status
1100     */
1101     void TrkLevel2::StatusDump(int view){
1102     cout << "DSP n. "<<view+1<<" status: "<<hex<<good[view]<<endl;
1103     };
1104     /**
1105     * \brief Check event status
1106     *
1107     * Check the event status, according to a flag-mask given as input.
1108     * Return true if the view passes the check.
1109     *
1110     * @param view View number (0-11)
1111     * @param flagmask Mask of flags to check (eg. flagmask=0x111 no missing packet,
1112     * no crc error, no software alarm)
1113     *
1114     * @see TrkLevel2 class definition to know how the status flag is defined
1115     *
1116     */
1117     Bool_t TrkLevel2::StatusCheck(int view, int flagmask){
1118    
1119     if( view<0 || view >= 12)return false;
1120     return !(good[view]&flagmask);
1121    
1122     };
1123    
1124    
1125 mocchiut 1.1 //--------------------------------------
1126     //
1127     //
1128     //--------------------------------------
1129     /**
1130 pam-fi 1.32 * The method returns false if the viking-chip was masked
1131     * either apriori ,on the basis of the mask read from the DB,
1132     * or run-by-run, on the basis of the calibration parameters)
1133     * @param iv Tracker view (0-11)
1134     * @param ivk Viking-chip number (0-23)
1135     */
1136     Bool_t TrkLevel2::GetVKMask(int iv, int ivk){
1137     Int_t whichbit = (Int_t)pow(2,ivk);
1138     return (whichbit&VKmask[iv])!=0;
1139     }
1140     /**
1141     * The method returns false if the viking-chip was masked
1142     * for this event due to common-noise computation failure.
1143     * @param iv Tracker view (0-11)
1144     * @param ivk Viking-chip number (0-23)
1145     */
1146     Bool_t TrkLevel2::GetVKFlag(int iv, int ivk){
1147     Int_t whichbit = (Int_t)pow(2,ivk);
1148     return (whichbit&VKflag[iv])!=0;
1149     }
1150     /**
1151     * The method returns true if the viking-chip was masked, either
1152     * forced (see TrkLevel2::GetVKMask(int,int)) or
1153     * for this event only (TrkLevel2::GetVKFlag(int,int)).
1154     * @param iv Tracker view (0-11)
1155     * @param ivk Viking-chip number (0-23)
1156 mocchiut 1.1 */
1157 pam-fi 1.32 Bool_t TrkLevel2::IsMaskedVK(int iv, int ivk){
1158     return !(GetVKMask(iv,ivk)&&GetVKFlag(iv,ivk) );
1159     };
1160 pam-fi 1.10
1161 pam-fi 1.9 //--------------------------------------
1162     //
1163     //
1164     //--------------------------------------
1165     /**
1166     * Fills a TrkLevel2 object with values from a struct cTrkLevel2 (to get data from F77 common).
1167 pam-fi 1.29 * Ref to Level1 data (clusters) is also set. If l1==NULL no references are set.
1168     * (NB It make sense to set references only if events are stored in a tree that contains also the Level1 branch)
1169 pam-fi 1.9 */
1170     void TrkLevel2::SetFromLevel2Struct(cTrkLevel2 *l2, TrkLevel1 *l1){
1171    
1172 pam-fi 1.29 // cout << "void TrkLevel2::SetFromLevel2Struct(cTrkLevel2 *l2, TrkLevel1 *l1)"<<endl;
1173     Clear();
1174 pam-fi 1.32
1175 pam-fi 1.9 // temporary objects:
1176 pam-fi 1.29 TrkSinglet* t_singlet = new TrkSinglet();
1177     TrkTrack* t_track = new TrkTrack();
1178    
1179     // -----------------
1180     // general variables
1181     // -----------------
1182     for(Int_t i=0; i<12 ; i++){
1183     good[i] = l2->good[i];
1184 pam-fi 1.32 VKmask[i]=0;
1185     VKflag[i]=0;
1186     for(Int_t ii=0; ii<24 ; ii++){
1187     Int_t setbit = (Int_t)pow(2,ii);
1188     if( l2->vkflag[ii][i]!=-1 )VKmask[i]=VKmask[i]|setbit;
1189     if( l2->vkflag[ii][i]!=0 )VKflag[i]=VKflag[i]|setbit;
1190     };
1191 pam-fi 1.29 };
1192     // --------------
1193     // *** TRACKS ***
1194     // --------------
1195     if(!Track) Track = new TClonesArray("TrkTrack");
1196     TClonesArray &t = *Track;
1197 pam-fi 1.32
1198 pam-fi 1.29 for(int i=0; i<l2->ntrk; i++){
1199     t_track->seqno = i;// NBNBNBNB deve sempre essere = i
1200     t_track->image = l2->image[i]-1;
1201     t_track->chi2 = l2->chi2_nt[i];
1202     t_track->nstep = l2->nstep_nt[i];
1203     for(int it1=0;it1<5;it1++){
1204     t_track->al[it1] = l2->al_nt[i][it1];
1205     for(int it2=0;it2<5;it2++)
1206     t_track->coval[it1][it2] = l2->coval[i][it2][it1];
1207 pam-fi 1.9 };
1208 pam-fi 1.29 for(int ip=0;ip<6;ip++){
1209 pam-fi 1.32 // ---------------------------------
1210     // new implementation of xgood/ygood
1211     // ---------------------------------
1212     t_track->xgood[ip] = l2->cltrx[i][ip]; //cluster ID
1213     t_track->ygood[ip] = l2->cltry[i][ip]; //cluster ID
1214     t_track->xgood[ip] += 10000000*l2->ls[i][ip]; // ladder+sensor
1215     t_track->ygood[ip] += 10000000*l2->ls[i][ip]; // ladder+sensor
1216     if(l2->xbad[i][ip]>0)t_track->xgood[ip]=-t_track->xgood[ip];
1217     if(l2->ybad[i][ip]>0)t_track->ygood[ip]=-t_track->ygood[ip];
1218     // if(l2->xbad[i][ip]>0 || l2->ybad[i][ip]>0){
1219     // if(l2->dedx_x[i][ip]<0 || l2->dedx_y[i][ip]<0){
1220     // cout << ip << " - "<< l2->cltrx[i][ip] << " "<<l2->cltry[i][ip]<<" "<<l2->ls[i][ip]<<endl;
1221     // cout << ip << " - "<<t_track->xgood[ip]<<" "<<t_track->ygood[ip]<<endl;
1222     // cout << ip << " - "<<t_track->GetClusterX_ID(ip)<<" "<<t_track->GetClusterY_ID(ip)<<" "<<t_track->GetLadder(ip)<<" "<<t_track->GetSensor(ip)<<endl;
1223     // cout << ip << " - "<<t_track->BadClusterX(ip)<<" "<<t_track->BadClusterY(ip)<<endl;
1224     // cout << ip << " - "<<t_track->SaturatedClusterX(ip)<<" "<<t_track->SaturatedClusterY(ip)<<endl;
1225     // }
1226 pam-fi 1.29 t_track->xm[ip] = l2->xm_nt[i][ip];
1227     t_track->ym[ip] = l2->ym_nt[i][ip];
1228     t_track->zm[ip] = l2->zm_nt[i][ip];
1229     t_track->resx[ip] = l2->resx_nt[i][ip];
1230     t_track->resy[ip] = l2->resy_nt[i][ip];
1231 pam-fi 1.32 t_track->tailx[ip] = l2->tailx[i][ip];
1232     t_track->taily[ip] = l2->taily[i][ip];
1233 pam-fi 1.29 t_track->xv[ip] = l2->xv_nt[i][ip];
1234     t_track->yv[ip] = l2->yv_nt[i][ip];
1235     t_track->zv[ip] = l2->zv_nt[i][ip];
1236     t_track->axv[ip] = l2->axv_nt[i][ip];
1237     t_track->ayv[ip] = l2->ayv_nt[i][ip];
1238     t_track->dedx_x[ip] = l2->dedx_x[i][ip];
1239     t_track->dedx_y[ip] = l2->dedx_y[i][ip];
1240     //-----------------------------------------------------
1241     //-----------------------------------------------------
1242     //-----------------------------------------------------
1243     //-----------------------------------------------------
1244     };
1245 pam-fi 1.32 // if(t_track->IsSaturated())t_track->Dump();
1246 pam-fi 1.29 new(t[i]) TrkTrack(*t_track);
1247     t_track->Clear();
1248     };
1249 pam-fi 1.32
1250 pam-fi 1.29 // ----------------
1251     // *** SINGLETS ***
1252     // ----------------
1253     if(!SingletX)SingletX = new TClonesArray("TrkSinglet");
1254     TClonesArray &sx = *SingletX;
1255     for(int i=0; i<l2->nclsx; i++){
1256     t_singlet->plane = l2->planex[i];
1257     t_singlet->coord[0] = l2->xs[i][0];
1258     t_singlet->coord[1] = l2->xs[i][1];
1259     t_singlet->sgnl = l2->signlxs[i];
1260     //-----------------------------------------------------
1261 pam-fi 1.32 // if(l1) t_singlet->cls = l1->GetCluster(l2->clsx[i]-1);
1262 pam-fi 1.29 //-----------------------------------------------------
1263     new(sx[i]) TrkSinglet(*t_singlet);
1264     t_singlet->Clear();
1265     }
1266     if(!SingletY)SingletY = new TClonesArray("TrkSinglet");
1267     TClonesArray &sy = *SingletY;
1268     for(int i=0; i<l2->nclsy; i++){
1269     t_singlet->plane = l2->planey[i];
1270     t_singlet->coord[0] = l2->ys[i][0];
1271     t_singlet->coord[1] = l2->ys[i][1];
1272     t_singlet->sgnl = l2->signlys[i];
1273 pam-fi 1.26 //-----------------------------------------------------
1274 pam-fi 1.32 // if(l1) t_singlet->cls = l1->GetCluster(l2->clsy[i]-1);
1275 pam-fi 1.26 //-----------------------------------------------------
1276 pam-fi 1.29 new(sy[i]) TrkSinglet(*t_singlet);
1277     t_singlet->Clear();
1278     };
1279 pam-fi 1.5
1280 pam-fi 1.29 delete t_track;
1281     delete t_singlet;
1282 mocchiut 1.1 }
1283 pam-fi 1.7 /**
1284     * Fills a struct cTrkLevel2 with values from a TrkLevel2 object (to put data into a F77 common).
1285     */
1286    
1287     void TrkLevel2::GetLevel2Struct(cTrkLevel2 *l2) const {
1288    
1289     // general variables
1290 pam-fi 1.10 // l2->good2 = good2 ;
1291 pam-fi 1.7 for(Int_t i=0; i<12 ; i++){
1292 pam-fi 1.10 // l2->crc[i] = crc[i];
1293     l2->good[i] = good[i];
1294 pam-fi 1.7 };
1295     // *** TRACKS ***
1296    
1297 pam-fi 1.21 if(Track){
1298     l2->ntrk = Track->GetEntries();
1299     for(Int_t i=0;i<l2->ntrk;i++){
1300     l2->image[i] = 1 + ((TrkTrack *)Track->At(i))->image;
1301     l2->chi2_nt[i] = ((TrkTrack *)Track->At(i))->chi2;
1302     l2->nstep_nt[i] = ((TrkTrack *)Track->At(i))->nstep;
1303     for(int it1=0;it1<5;it1++){
1304     l2->al_nt[i][it1] = ((TrkTrack *)Track->At(i))->al[it1];
1305     for(int it2=0;it2<5;it2++)
1306     l2->coval[i][it2][it1] = ((TrkTrack *)Track->At(i))->coval[it1][it2];
1307     };
1308     for(int ip=0;ip<6;ip++){
1309 pam-fi 1.30 l2->xgood_nt[i][ip] = ((TrkTrack *)Track->At(i))->XGood(ip);
1310     l2->ygood_nt[i][ip] = ((TrkTrack *)Track->At(i))->YGood(ip);
1311 pam-fi 1.21 l2->xm_nt[i][ip] = ((TrkTrack *)Track->At(i))->xm[ip];
1312     l2->ym_nt[i][ip] = ((TrkTrack *)Track->At(i))->ym[ip];
1313     l2->zm_nt[i][ip] = ((TrkTrack *)Track->At(i))->zm[ip];
1314     l2->resx_nt[i][ip] = ((TrkTrack *)Track->At(i))->resx[ip];
1315     l2->resy_nt[i][ip] = ((TrkTrack *)Track->At(i))->resy[ip];
1316 pam-fi 1.32 l2->tailx[i][ip] = ((TrkTrack *)Track->At(i))->tailx[ip];
1317     l2->taily[i][ip] = ((TrkTrack *)Track->At(i))->taily[ip];
1318 pam-fi 1.21 l2->xv_nt[i][ip] = ((TrkTrack *)Track->At(i))->xv[ip];
1319     l2->yv_nt[i][ip] = ((TrkTrack *)Track->At(i))->yv[ip];
1320     l2->zv_nt[i][ip] = ((TrkTrack *)Track->At(i))->zv[ip];
1321     l2->axv_nt[i][ip] = ((TrkTrack *)Track->At(i))->axv[ip];
1322     l2->ayv_nt[i][ip] = ((TrkTrack *)Track->At(i))->ayv[ip];
1323     l2->dedx_x[i][ip] = ((TrkTrack *)Track->At(i))->dedx_x[ip];
1324     l2->dedx_y[i][ip] = ((TrkTrack *)Track->At(i))->dedx_y[ip];
1325     };
1326     }
1327     }
1328     // *** SINGLETS ***
1329     if(SingletX){
1330     l2->nclsx = SingletX->GetEntries();
1331     for(Int_t i=0;i<l2->nclsx;i++){
1332     l2->planex[i] = ((TrkSinglet *)SingletX->At(i))->plane;
1333     l2->xs[i][0] = ((TrkSinglet *)SingletX->At(i))->coord[0];
1334     l2->xs[i][1] = ((TrkSinglet *)SingletX->At(i))->coord[1];
1335     l2->signlxs[i] = ((TrkSinglet *)SingletX->At(i))->sgnl;
1336     }
1337 pam-fi 1.7 }
1338    
1339 pam-fi 1.21 if(SingletY){
1340     l2->nclsy = SingletY->GetEntries();
1341     for(Int_t i=0;i<l2->nclsy;i++){
1342     l2->planey[i] = ((TrkSinglet *)SingletY->At(i))->plane;
1343     l2->ys[i][0] = ((TrkSinglet *)SingletY->At(i))->coord[0];
1344     l2->ys[i][1] = ((TrkSinglet *)SingletY->At(i))->coord[1];
1345     l2->signlys[i] = ((TrkSinglet *)SingletY->At(i))->sgnl;
1346     }
1347 pam-fi 1.7 }
1348     }
1349 mocchiut 1.1 //--------------------------------------
1350     //
1351     //
1352     //--------------------------------------
1353     void TrkLevel2::Clear(){
1354     for(Int_t i=0; i<12 ; i++){
1355 pam-fi 1.21 good[i] = -1;
1356 pam-fi 1.32 VKflag[i] = 0;
1357     VKmask[i] = 0;
1358 pam-fi 1.21 };
1359     // if(Track)Track->Clear("C");
1360     // if(SingletX)SingletX->Clear("C");
1361     // if(SingletY)SingletY->Clear("C");
1362     if(Track)Track->Delete();
1363     if(SingletX)SingletX->Delete();
1364     if(SingletY)SingletY->Delete();
1365     }
1366     // //--------------------------------------
1367     // //
1368     // //
1369     // //--------------------------------------
1370 pam-fi 1.11 void TrkLevel2::Delete(){
1371    
1372 pam-fi 1.21 // cout << "void TrkLevel2::Delete()"<<endl;
1373     Clear();
1374     if(Track)delete Track;
1375     if(SingletX)delete SingletX;
1376     if(SingletY)delete SingletY;
1377    
1378 pam-fi 1.11 }
1379     //--------------------------------------
1380     //
1381     //
1382     //--------------------------------------
1383 mocchiut 1.1 /**
1384     * Sort physical tracks and stores them in a TObjectArray, ordering by increasing chi**2 value (in case of track image, it selects the one with lower chi**2). The total number of physical tracks is given by GetNTracks() and the it-th physical track can be retrieved by means of the method GetTrack(int it).
1385     * This method is overridden by PamLevel2::GetTracks(), where calorimeter and TOF information is used.
1386     */
1387 pam-fi 1.8 TRefArray *TrkLevel2::GetTracks_NFitSorted(){
1388 pam-fi 1.3
1389 pam-fi 1.21 if(!Track)return 0;
1390    
1391     TRefArray *sorted = new TRefArray();
1392 pam-fi 1.8
1393 pam-fi 1.21 TClonesArray &t = *Track;
1394 pam-fi 1.8 // TClonesArray &ts = *PhysicalTrack;
1395 pam-fi 1.21 int N = ntrk();
1396     vector<int> m(N); for(int i=0; i<N; i++)m[i]=1;
1397 pam-fi 1.8 // int m[50]; for(int i=0; i<N; i++)m[i]=1;
1398    
1399 pam-fi 1.21 int indo=0;
1400     int indi=0;
1401 pam-fi 1.26 while(N > 0){
1402     // while(N != 0){
1403 pam-fi 1.21 int nfit =0;
1404     float chi2ref = numeric_limits<float>::max();
1405 pam-fi 1.9
1406 pam-fi 1.21 // first loop to search maximum num. of fit points
1407     for(int i=0; i < ntrk(); i++){
1408     if( ((TrkTrack *)t[i])->GetNtot() >= nfit && m[i]==1){
1409     nfit = ((TrkTrack *)t[i])->GetNtot();
1410     }
1411     }
1412     //second loop to search minimum chi2 among selected
1413 pam-fi 1.26 for(int i=0; i<ntrk(); i++){
1414 pam-fi 1.21 Float_t chi2 = ((TrkTrack *)t[i])->chi2;
1415 pam-fi 1.26 if(chi2 < 0) chi2 = -chi2*1000;
1416 pam-fi 1.21 if( chi2 < chi2ref
1417     && ((TrkTrack *)t[i])->GetNtot() == nfit
1418     && m[i]==1){
1419     chi2ref = ((TrkTrack *)t[i])->chi2;
1420     indi = i;
1421     };
1422     };
1423     if( ((TrkTrack *)t[indi])->HasImage() ){
1424     m[((TrkTrack *)t[indi])->image] = 0;
1425     N--;
1426 pam-fi 1.8
1427 pam-fi 1.26 // cout << "i** "<< ((TrkTrack *)t[indi])->image << " " << nfiti <<" "<<chi2i<<endl;
1428 pam-fi 1.21 };
1429     sorted->Add( (TrkTrack*)t[indi] );
1430 pam-fi 1.3
1431 pam-fi 1.21 m[indi] = 0;
1432 pam-fi 1.26 // cout << "SORTED "<< indo << " "<< indi << " "<< N << " "<<((TrkTrack *)t[indi])->image<<" "<<chi2ref<<endl;
1433 pam-fi 1.21 N--;
1434     indo++;
1435     }
1436     m.clear();
1437 pam-fi 1.26 // cout << "GetTracks_NFitSorted(it): Done"<< endl;
1438 pam-fi 1.8
1439 pam-fi 1.21 return sorted;
1440 pam-fi 1.6 // return PhysicalTrack;
1441 pam-fi 1.3 }
1442 mocchiut 1.1 //--------------------------------------
1443     //
1444     //
1445     //--------------------------------------
1446     /**
1447     * Retrieves the is-th stored track.
1448     * @param it Track number, ranging from 0 to ntrk().
1449     * Fitted tracks ( images included ) are stored in a TObjectArray ( TrkLevel2::Track ) in the same order they are returned by the F77 fitting routine.
1450     */
1451     TrkTrack *TrkLevel2::GetStoredTrack(int is){
1452    
1453     if(is >= this->ntrk()){
1454     cout << "** TrkLevel2 ** Track "<< is << "doen not exits! " << endl;
1455     cout << " Stored tracks ntrk() = "<< this->ntrk() << endl;
1456     return 0;
1457     }
1458 pam-fi 1.21 if(!Track){
1459     cout << "TrkTrack *TrkLevel2::GetStoredTrack(int is) >> (TClonesArray*) Track ==0 "<<endl;
1460     };
1461 mocchiut 1.1 TClonesArray &t = *(Track);
1462     TrkTrack *track = (TrkTrack*)t[is];
1463     return track;
1464     }
1465     //--------------------------------------
1466     //
1467     //
1468     //--------------------------------------
1469     /**
1470 pam-fi 1.6 * Retrieves the is-th stored X singlet.
1471     * @param it Singlet number, ranging from 0 to nclsx().
1472     */
1473     TrkSinglet *TrkLevel2::GetSingletX(int is){
1474    
1475     if(is >= this->nclsx()){
1476     cout << "** TrkLevel2 ** Singlet "<< is << "doen not exits! " << endl;
1477     cout << " Stored x-singlets nclsx() = "<< this->nclsx() << endl;
1478     return 0;
1479     }
1480 pam-fi 1.21 if(!SingletX)return 0;
1481 pam-fi 1.6 TClonesArray &t = *(SingletX);
1482     TrkSinglet *singlet = (TrkSinglet*)t[is];
1483     return singlet;
1484     }
1485     //--------------------------------------
1486     //
1487     //
1488     //--------------------------------------
1489     /**
1490     * Retrieves the is-th stored Y singlet.
1491     * @param it Singlet number, ranging from 0 to nclsx().
1492     */
1493     TrkSinglet *TrkLevel2::GetSingletY(int is){
1494    
1495     if(is >= this->nclsy()){
1496     cout << "** TrkLevel2 ** Singlet "<< is << "doen not exits! " << endl;
1497     cout << " Stored y-singlets nclsy() = "<< this->nclsx() << endl;
1498     return 0;
1499     }
1500 pam-fi 1.21 if(!SingletY)return 0;
1501 pam-fi 1.6 TClonesArray &t = *(SingletY);
1502     TrkSinglet *singlet = (TrkSinglet*)t[is];
1503     return singlet;
1504     }
1505     //--------------------------------------
1506     //
1507     //
1508     //--------------------------------------
1509     /**
1510 mocchiut 1.1 * Retrieves the it-th "physical" track, sorted by the method GetNTracks().
1511     * @param it Track number, ranging from 0 to GetNTracks().
1512     */
1513 pam-fi 1.10
1514 pam-fi 1.8 TrkTrack *TrkLevel2::GetTrack(int it){
1515    
1516     if(it >= this->GetNTracks()){
1517     cout << "** TrkLevel2 ** Track "<< it << "does not exits! " << endl;
1518     cout << " Physical tracks GetNTracks() = "<< this->ntrk() << endl;
1519     return 0;
1520     }
1521    
1522     TRefArray *sorted = GetTracks(); //TEMPORANEO
1523 pam-fi 1.21 if(!sorted)return 0;
1524 pam-fi 1.8 TrkTrack *track = (TrkTrack*)sorted->At(it);
1525 pam-fi 1.21 sorted->Clear();
1526     delete sorted;
1527 pam-fi 1.8 return track;
1528 mocchiut 1.1 }
1529 pam-fi 1.6 /**
1530     * Give the number of "physical" tracks, sorted by the method GetTracks().
1531     */
1532 pam-fi 1.5 Int_t TrkLevel2::GetNTracks(){
1533 pam-fi 1.8
1534     Float_t ntot=0;
1535 pam-fi 1.21 if(!Track)return 0;
1536 pam-fi 1.8 TClonesArray &t = *Track;
1537 mocchiut 1.12 for(int i=0; i<ntrk(); i++) {
1538 pam-fi 1.8 if( ((TrkTrack *)t[i])->GetImageSeqNo() == -1 ) ntot+=1.;
1539     else ntot+=0.5;
1540     }
1541     return (Int_t)ntot;
1542    
1543 pam-fi 1.5 };
1544 mocchiut 1.1 //--------------------------------------
1545     //
1546     //
1547     //--------------------------------------
1548     /**
1549     * Retrieves (if present) the image of the it-th "physical" track, sorted by the method GetNTracks().
1550     * @param it Track number, ranging from 0 to GetNTracks().
1551     */
1552 pam-fi 1.8 TrkTrack *TrkLevel2::GetTrackImage(int it){
1553    
1554 pam-fi 1.21 if(it >= this->GetNTracks()){
1555     cout << "** TrkLevel2 ** Track "<< it << "does not exits! " << endl;
1556     cout << " Physical tracks GetNTracks() = "<< this->ntrk() << endl;
1557     return 0;
1558     }
1559 pam-fi 1.8
1560 pam-fi 1.21 TRefArray* sorted = GetTracks(); //TEMPORANEO
1561     if(!sorted)return 0;
1562     TrkTrack *track = (TrkTrack*)sorted->At(it);
1563 pam-fi 1.8
1564 pam-fi 1.21 if(!track->HasImage()){
1565     cout << "** TrkLevel2 ** Track "<< it << "does not have image! " << endl;
1566     return 0;
1567     }
1568     if(!Track)return 0;
1569     TrkTrack *image = (TrkTrack*)(*Track)[track->image];
1570    
1571     sorted->Delete();
1572     delete sorted;
1573 pam-fi 1.8
1574 pam-fi 1.21 return image;
1575 pam-fi 1.8
1576 mocchiut 1.1 }
1577     //--------------------------------------
1578     //
1579     //
1580     //--------------------------------------
1581     /**
1582     * Loads the magnetic field.
1583     * @param s Path of the magnetic-field files.
1584     */
1585 pam-fi 1.16 void TrkLevel2::LoadField(TString path){
1586     //
1587 pam-fi 1.26 // strcpy(path_.path,path.Data());
1588     // path_.pathlen = path.Length();
1589     // path_.error = 0;
1590     // readb_();
1591    
1592 pam-fi 1.33 TrkParams::SetTrackingMode();
1593     TrkParams::SetPrecisionFactor();
1594     TrkParams::SetStepMin();
1595    
1596 pam-fi 1.26 TrkParams::Set(path,1);
1597 pam-fi 1.28 TrkParams::Load(1);
1598 pam-fi 1.26
1599 pam-fi 1.16 //
1600 mocchiut 1.1 };
1601 pam-fi 1.33 // /**
1602     // * Get BY (kGauss)
1603     // * @param v (x,y,z) coordinates in cm
1604     // */
1605     // float TrkLevel2::GetBX(float* v){
1606     // float b[3];
1607     // gufld_(v,b);
1608     // return b[0]/10.;
1609     // }
1610     // /**
1611     // * Get BY (kGauss)
1612     // * @param v (x,y,z) coordinates in cm
1613     // */
1614     // float TrkLevel2::GetBY(float* v){
1615     // float b[3];
1616     // gufld_(v,b);
1617     // return b[1]/10.;
1618     // }
1619     // /**
1620     // * Get BY (kGauss)
1621     // * @param v (x,y,z) coordinates in cm
1622     // */
1623     // float TrkLevel2::GetBZ(float* v){
1624     // float b[3];
1625     // gufld_(v,b);
1626     // return b[2]/10.;
1627     // }
1628 mocchiut 1.1 //--------------------------------------
1629     //
1630     //
1631     //--------------------------------------
1632     /**
1633 pam-fi 1.6 * Get tracker-plane (mechanical) z-coordinate
1634     * @param plane_id plane index (1=TOP,2,3,4,5,6=BOTTOM)
1635     */
1636     Float_t TrkLevel2::GetZTrk(Int_t plane_id){
1637     switch(plane_id){
1638     case 1: return ZTRK1;
1639     case 2: return ZTRK2;
1640     case 3: return ZTRK3;
1641     case 4: return ZTRK4;
1642     case 5: return ZTRK5;
1643     case 6: return ZTRK6;
1644     default: return 0.;
1645     };
1646     };
1647     //--------------------------------------
1648     //
1649     //
1650     //--------------------------------------
1651     /**
1652 pam-fi 1.2 * Trajectory default constructor.
1653     * (By default is created with z-coordinates inside the tracking volume)
1654     */
1655     Trajectory::Trajectory(){
1656     npoint = 10;
1657     x = new float[npoint];
1658     y = new float[npoint];
1659     z = new float[npoint];
1660     thx = new float[npoint];
1661     thy = new float[npoint];
1662     tl = new float[npoint];
1663 pam-fi 1.6 float dz = ((ZTRK1)-(ZTRK6))/(npoint-1);
1664 pam-fi 1.2 for(int i=0; i<npoint; i++){
1665     x[i] = 0;
1666     y[i] = 0;
1667 pam-fi 1.6 z[i] = (ZTRK1) - i*dz;
1668 pam-fi 1.2 thx[i] = 0;
1669     thy[i] = 0;
1670     tl[i] = 0;
1671     }
1672     }
1673     //--------------------------------------
1674     //
1675     //
1676     //--------------------------------------
1677     /**
1678 mocchiut 1.1 * Trajectory constructor.
1679 pam-fi 1.2 * (By default is created with z-coordinates inside the tracking volume)
1680 mocchiut 1.1 * \param n Number of points
1681     */
1682     Trajectory::Trajectory(int n){
1683 pam-fi 1.2 if(n<=0){
1684     cout << "NB! Trajectory must have at least 1 point >>> created with 10 points" << endl;
1685     n=10;
1686     }
1687 mocchiut 1.1 npoint = n;
1688     x = new float[npoint];
1689     y = new float[npoint];
1690     z = new float[npoint];
1691 pam-fi 1.2 thx = new float[npoint];
1692     thy = new float[npoint];
1693     tl = new float[npoint];
1694 pam-fi 1.6 float dz = ((ZTRK1)-(ZTRK6))/(npoint-1);
1695 mocchiut 1.1 for(int i=0; i<npoint; i++){
1696 pam-fi 1.2 x[i] = 0;
1697 mocchiut 1.1 y[i] = 0;
1698 pam-fi 1.6 z[i] = (ZTRK1) - i*dz;
1699 pam-fi 1.2 thx[i] = 0;
1700     thy[i] = 0;
1701     tl[i] = 0;
1702 mocchiut 1.1 }
1703     }
1704     //--------------------------------------
1705     //
1706     //
1707     //--------------------------------------
1708     /**
1709     * Trajectory constructor.
1710     * \param n Number of points
1711     * \param pz Pointer to float array, defining z coordinates
1712     */
1713     Trajectory::Trajectory(int n, float* zin){
1714 pam-fi 1.2 npoint = 10;
1715     if(n>0)npoint = n;
1716 mocchiut 1.1 x = new float[npoint];
1717     y = new float[npoint];
1718     z = new float[npoint];
1719 pam-fi 1.2 thx = new float[npoint];
1720     thy = new float[npoint];
1721     tl = new float[npoint];
1722     int i=0;
1723     do{
1724 pam-fi 1.21 x[i] = 0;
1725     y[i] = 0;
1726     z[i] = zin[i];
1727     thx[i] = 0;
1728     thy[i] = 0;
1729     tl[i] = 0;
1730     i++;
1731 pam-fi 1.2 }while(zin[i-1] > zin[i] && i < npoint);
1732     npoint=i;
1733     if(npoint != n)cout << "NB! Trajectory created with "<<npoint<<" points"<<endl;
1734 mocchiut 1.1 }
1735 pam-fi 1.21 void Trajectory::Delete(){
1736    
1737     if(x) delete [] x;
1738     if(y) delete [] y;
1739     if(z) delete [] z;
1740     if(thx) delete [] thx;
1741     if(thy) delete [] thy;
1742     if(tl) delete [] tl;
1743    
1744     }
1745 mocchiut 1.1 //--------------------------------------
1746     //
1747     //
1748     //--------------------------------------
1749     /**
1750     * Dump the trajectory coordinates.
1751     */
1752     void Trajectory::Dump(){
1753     cout <<endl<< "Trajectory ========== "<<endl;
1754     for (int i=0; i<npoint; i++){
1755 pam-fi 1.2 cout << i <<" >> " << x[i] <<" "<< y[i] <<" "<< z[i] ;
1756     cout <<" -- " << thx[i] <<" "<< thy[i] ;
1757     cout <<" -- " << tl[i] << endl;
1758 mocchiut 1.1 };
1759     }
1760 pam-fi 1.2 //--------------------------------------
1761     //
1762     //
1763     //--------------------------------------
1764     /**
1765     * Get trajectory length between two points
1766     * @param ifirst first point (default 0)
1767     * @param ilast last point (default npoint)
1768     */
1769     float Trajectory::GetLength(int ifirst, int ilast){
1770     if( ifirst<0 ) ifirst = 0;
1771     if( ilast>=npoint) ilast = npoint-1;
1772     float l=0;
1773     for(int i=ifirst;i<=ilast;i++){
1774     l=l+tl[i];
1775     };
1776     if(z[ilast] > ZINI)l=l-tl[ilast];
1777     if(z[ifirst] < ZINI) l=l-tl[ifirst];
1778    
1779     return l;
1780 mocchiut 1.1
1781 pam-fi 1.2 }
1782 pam-fi 1.6
1783 pam-fi 1.19 /**
1784     * Evaluates the trajectory in the apparatus associated to the track.
1785     * It integrates the equations of motion in the magnetic field. The magnetic field should be previously loaded ( by calling TrkLevel2::LoadField() ), otherwise an error message is returned.
1786     * @param t pointer to an object of the class Trajectory,
1787     * which z coordinates should be previously initialized by calling the proper constructor ( Trajectory::Trajectory(int n, float* zin) ).
1788     * @return error flag.
1789     */
1790     int Trajectory::DoTrack2(float* al){
1791    
1792     double *dxout = new double[npoint];
1793     double *dyout = new double[npoint];
1794     double *dthxout = new double[npoint];
1795     double *dthyout = new double[npoint];
1796     double *dtlout = new double[npoint];
1797     double *dzin = new double[npoint];
1798     double dal[5];
1799    
1800     int ifail = 0;
1801    
1802     for (int i=0; i<5; i++) dal[i] = (double)al[i];
1803     for (int i=0; i<npoint; i++) dzin[i] = (double)z[i];
1804    
1805 pam-fi 1.26 TrkParams::Load(1);
1806     if( !TrkParams::IsLoaded(1) ){
1807     cout << "int Trajectory::DoTrack2(float* al) --- ERROR --- m.field not loaded"<<endl;
1808     return 0;
1809     }
1810 pam-fi 1.19 dotrack2_(&(npoint),dzin,dxout,dyout,dthxout,dthyout,dtlout,dal,&ifail);
1811    
1812     for (int i=0; i<npoint; i++){
1813     x[i] = (float)*dxout++;
1814     y[i] = (float)*dyout++;
1815     thx[i] = (float)*dthxout++;
1816     thy[i] = (float)*dthyout++;
1817     tl[i] = (float)*dtlout++;
1818     }
1819    
1820     return ifail;
1821     };
1822 pam-fi 1.10
1823 mocchiut 1.1 ClassImp(TrkLevel2);
1824     ClassImp(TrkSinglet);
1825     ClassImp(TrkTrack);
1826     ClassImp(Trajectory);

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